about this book
This book is a comprehensive overview of what RLHF is, how it is done, and how it fits into the broader methods of modern post-training. RLHF is both complicated to implement and intensely interdisciplinary. The book is a horizontal cut through all the fields and pieces that go into RLHF: reinforcement learning, theory, code, philosophy, data, UX, product, and so on, with a few key chapters that go into great detail on the core methods—the places where complexity is part of the process.
To be truthful about what is done today, the focus is on the methods used, their fundamental motivations and implementations, and the intuitions behind them. The reality of building actually useful AI models is that doing so in practice is ...
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